The magnitude of the electrostatic force is 0.09 N, and the force is attractive
Explanation:
The strength of the electrostatic force acting on a charged particle is given by
[tex]F=qE[/tex]
where
q is the charge
E is the magnitude of the electric field
For the charge in this problem, we have:
[tex]E=4.5\cdot 10^4 N/C[/tex] is the electric field
[tex]q=-2.0\cdot 10^{-6}C[/tex] is the charge
Therefore, the force experienced by this charge is
[tex]F=(-2.0\cdot 10^{-6})(4.5\cdot 10^4)=-0.09 N[/tex]
And the negative sign means that the force is attractive: in fact, the charge is negative, while the charge that is producing the field is positive (because the electric field points outward), therefore the negative charge is attracted towards the positive charge that is generating the field.
Learn more about electrostatic force:
brainly.com/question/8960054
brainly.com/question/4273177
#LearnwithBrainly
